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Dive into the research topics where Zhu Qingjun is active.

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Featured researches published by Zhu Qingjun.


Plasma Science & Technology | 2016

Neutronics Analysis of Water-Cooled Ceramic Breeder Blanket for CFETR

Zhu Qingjun; Li Jia; Liu Songlin

In order to investigate the nuclear response to the water-cooled ceramic breeder blanket models for CFETR, a detailed 3D neutronics model with 22.5° torus sector was developed based on the integrated geometry of CFETR, including heterogeneous WCCB blanket models, shield, divertor, vacuum vessel, toroidal and poloidal magnets, and ports. Using the Monte Carlo N-Particle Transport Code MCNP5 and IAEA Fusion Evaluated Nuclear Data Library FENDL2.1, the neutronics analyses were performed. The neutron wall loading, tritium breeding ratio, the nuclear heating, neutron-induced atomic displacement damage, and gas production were determined. The results indicate that the global TBR of no less than 1.2 will be a big challenge for the water-cooled ceramic breeder blanket for CFETR.


Plasma Science & Technology | 2016

Activation and Environmental Aspects of In-Vacuum Vessel Components of CFETR

Zhang Xiaokang; Liu Songlin; Zhu Qingjun

The water-cooled ceramic breeder (WCCB) blanket is one of the three candidates of Chinas Fusion Engineering Test Reactor (CFETR). The evaluation of the radioactivity and decay heat produced by neutrons for the in-vacuum vessel components is essential for the assessment of radioactive wastes and the safety of CFETR. The activation calculation of CFETR in-vacuum vessel components was carried out by using the Monte Carlo N-Particle Transport Code MCNP, IAEA Fusion Evaluated Nuclear Data Library FENDL2.1, and the nuclear inventory code FISPACT-2007 and corresponding EAF-2007 libraries. In these analyses, the three-dimensional (3-D) neutronics model was employed and the WCCB blanket, the divertor, and the shield were modeled in detail to provide the detailed spatial distribution of the neutron flux and energy spectra. Then the neutron flux, energy spectra and the materials specification were transferred to FISPACT for the activation calculation with an assumed irradiation scenario of CFETR. This paper presents the main results of the activation analysis to evaluate the radioactivity, the decay heat, the contact dose, and the waste classification of the radioactive materials. At the time of shutdown, the activity of the WCCB blanket is 1.88×1019 Bq and the specific activity, the decay heat and the contact dose rate are 1.7 × 1013 Bq/kg, 3.05 MW, and 2.0 × 103 Sv/h respectively. After cooling for 100 years, 79% (4166.4 tons) radioactive wastes produced from the blanket, divertor, high temperature shield (HTS) and low temperature shield (LTS) need near surface disposal, while 21% (1112.3 tons) need geological disposal. According to results of the contact dose rate, all the components of the blanket, divertor, HTS and LTS could potentially be recycled after shutdown by using advanced remote handling equipment. In addition, the selection of Eurofer97 or RAFM for the divertor is better than that of SS316 because SS316 makes the activity of the divertor-body keep at a relatively high level.


Plasma Science & Technology | 2016

Analysis of Time-Dependent Tritium Breeding Capability of Water Cooled Ceramic Breeder Blanket for CFETR*

Gao Fangfang; Zhang Xiaokang; Pu Yong; Zhu Qingjun; Liu Songlin

Attaining tritium self-sufficiency is an important mission for the Chinese Fusion Engineering Testing Reactor (CFETR) operating on a Deuterium-Tritium (D-T) fuel cycle. It is necessary to study the tritium breeding ratio (TBR) and breeding tritium inventory variation with operation time so as to provide an accurate data for dynamic modeling and analysis of the tritium fuel cycle. A water cooled ceramic breeder (WCCB) blanket is one candidate of blanket concepts for the CFETR. Based on the detailed 3D neutronics model of CFETR with the WCCB blanket, the time-dependent TBR and tritium surplus were evaluated by a coupling calculation of the Monte Carlo N-Particle Transport Code (MCNP) and the fusion activation code FISPACT-2007. The results indicated that the TBR and tritium surplus of the WCCB blanket were a function of operation time and fusion power due to the Li consumption in breeder and material activation. In addition, by comparison with the results calculated by using the 3D neutronics model and employing the transfer factor constant from 1D to 3D, it is noted that 1D analysis leads to an over-estimation for the time-dependent tritium breeding capability when fusion power is larger than 1000 MW.


Archive | 2015

Device for processing coating on coating construction site

Hou Baorong; Wang Jing; Zhu Qingjun; Zhao Xia; Ma Xiumin; Li Hongling; Zhu Sulan; Zhang Zengpei; Zhang Cailing


Archive | 2017

Pebble bed comprehensive experiment measuring apparatus and method

Chen Lei; Liu Songlin; Chen Youhua; Zhu Qingjun; Huang Kai; Li Min; Ma Xuebin


Archive | 2017

Fusion-reactor cladding adapted to two fusion powers

Jiang Kecheng; Liu Songlin; Ma Xuebin; Li Min; Zhu Qingjun; Huang Kai


Archive | 2017

Optimum design method for fusion reactor tritium multiplication cladding

Jiang Kecheng; Liu Songlin; Li Min; Zhang Xiaokang; Li Jia; Zhu Qingjun; Huang Kai


Archive | 2017

Preparation method for preparing graphene oxide anti-corrosion protective film on metal surface

Zhao Xia; Ji Xiaohong; Jin Zuquan; Sun Xiaolin; Zhu Qingjun; Zhu Sulan; Hou Baorong


Archive | 2017

Fusion reactor water-helium cold ceramic breeder cladding

Li Min; Liu Songlin; Huang Kai; Zhu Qingjun; Chen Lei; Ma Xuebin; Jiang Kecheng


Chemical Engineering Journal | 2017

腐食抑制と生物汚損軽減のための自己congregatedナノワイヤに基づく制御可能なDianthus caryophyllus様超親水性/超疎水性階層構造【Powered by NICT】

Zhang Binbin; Hu Xiuhua; Zhu Qingjun; Wang Xiutong; Zhao Xia; Sun Congtao; Li Yantao; Hou Baorong

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Liu Songlin

Chinese Academy of Sciences

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Hou Baorong

Chinese Academy of Sciences

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Li Jia

University of Science and Technology of China

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Huang Kai

Chinese Academy of Sciences

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Zhao Xia

Chinese Academy of Sciences

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Ma Xuebin

University of Science and Technology of China

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Zhang Xiaokang

Chinese Academy of Sciences

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Zhu Sulan

Chinese Academy of Sciences

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Chen Lei

Chinese Academy of Sciences

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Gao Fangfang

University of Science and Technology of China

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